Carried Object Detection Based on an Ensemble of Contour Exemplars

نویسندگان

  • Farnoosh Ghadiri
  • Robert Bergevin
  • Guillaume-Alexandre Bilodeau
چکیده

We study the challenging problem of detecting carried objects (CO) in surveillance videos. For this purpose, we formulate CO detection in terms of determining a person’s contour hypothesis and detecting CO by exploiting the remaining contours. A hypothesis mask for a person’s contours is generated based on an ensemble of contour exemplars of humans with different standing and walking poses. Contours that are not falling in a person’s contour hypothesis mask are considered as candidates for CO contours. Then, a region is assigned to each CO candidate contour using biased normalized cut and is scored by a weighted function of its overlap with the person’s contour hypothesis mask and segmented foreground. To detect COs from obtained candidate regions, a non-maximum suppression method is applied to eliminate the low score candidates. We detect COs without protrusion assumption from a normal silhouette as well as without any prior information about the COs. Experimental results show that our method outperforms state-of-the-art methods even if we are using fewer assumptions.

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تاریخ انتشار 2016